Improved Solution to the ℓ0 Regularized Optimization Problem via Dictionary-Reduced Initial Guess

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Abstract

The ℓ0 regularized optimization (ℓ0-RO) problem is a nonconvex problem that is central to several applications such as sparse coding, dictionary learning, compressed sensing, etc. Iterative algorithms for ℓ0 - RO problem are only known to have local or subsequence convergence properties i.e. the solution is trapped in a saddle point or in an inferior local solution. Inspired by techniques used to improve the alternating optimization (AO) of nonconvex functions, we propose a simple yet effective two step iterative method to improve the solution to the ℓ0RO problem. Given an initial solution, we first find the vanilla solution to ℓ0RO via a descent method (in particular, Nesterov's accelerated gradient descent), to then estimate a new initial solution by using a scaled version of the dictionary involved in the ℓ0-RO problem, considering only a reduced number of its atoms. Our proposed algorithm is empirically demonstrated to have the best tradeoff between accuracy and computation time, when compared to state-of-the-art algorithms. Furthermore, due to its structure, our proposed algorithm can be directly apply to the convolutional formulation of ℓ0-RO.

Original languageEnglish
Title of host publication2018 IEEE 13th Image, Video, and Multidimensional Signal Processing Workshop, IVMSP 2018 - Proceedings
PublisherInstitute of Electrical and Electronics Engineers Inc.
ISBN (Print)9781538609514
DOIs
StatePublished - 27 Aug 2018
Event13th IEEE Image, Video, and Multidimensional Signal Processing Workshop, IVMSP 2018 - Zagori, Greece
Duration: 10 Jun 201812 Jun 2018

Publication series

Name2018 IEEE 13th Image, Video, and Multidimensional Signal Processing Workshop, IVMSP 2018 - Proceedings

Conference

Conference13th IEEE Image, Video, and Multidimensional Signal Processing Workshop, IVMSP 2018
Country/TerritoryGreece
CityZagori
Period10/06/1812/06/18

Keywords

  • Nonsmooth/Nonconvex optimization
  • escape procedure. Nesterov's AGD
  • ℓ regularized optimization

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